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Lung Injury clinical trials

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NCT ID: NCT03654352 Completed - Clinical trials for Acute Respiratory Distress Syndrome

The ASTERS Study: Assessing the Role of Sphingolipids in AcuTE Respiratory Distress Syndrome (ARDS)

ASTERS
Start date: April 17, 2019
Phase:
Study type: Observational

Acute lung injury (ALI) and the more severe manifestation, acute respiratory distress syndrome (ARDS) describe syndromes of acute onset, bilateral, inflammatory pulmonary infiltrates and impaired oxygenation. ARDS/ALI are a continuum of disease which results in a life threatening, rapidly progressive illness and occurs in critically ill patients. Recent reports in the Journal of the American Medical Association (JAMA) highlight the significant public health impact ARDS/ALI has on the critically ill population in that despite robust research efforts, these illnesses continue to be under diagnosed, under treated, and continue to have a high mortality rate (≥ 40% of all confirmed diagnoses). The estimates for ARDS/ALI incidence vary due to inconsistencies with proper diagnosis and lack of valid biomarkers of disease; however, it is expected that anywhere from 20-50% of patients on mechanical ventilation will develop this disease. Previous work by our group has shown that sphingolipids play a multifaceted role in lung inflammation. Sphingolipid are a class of bioactive lipids that play a role in cellular processes such as apoptosis, cell migration, and adhesion. Ceramide is one species of sphingolipid the investigators have examined in both man and mouse. Our laboratory has shown that ceramide is up-regulated in pulmonary inflammation in mouse models of pneumonitis and is elevated in the exhaled breath condensate of mechanically ventilated patients at risk for ARDS/ALI. Our work coupled with the work of others highlighting a role for ceramide in chronic obstructive pulmonary disease (COPD), surfactant dysfunction, and infectious disease make ceramide a logical candidate biomarker that warrants further investigation. To our knowledge, there are no studies examining the role of ceramide as a biomarker in ARDS/ALI. Thus, our overarching hypothesis is that ceramide is elevated in the lungs of patients who develop ARDS/ALI. This lipid dysregulation accounts for the pathophysiology seen in this disease and may be a potential pharmacologic target for clinical treatment. Thus the purpose of this exploratory research is to maximize existing specimens to further evaluate ceramide as a biomarker for acute lung injury.

NCT ID: NCT03651817 Completed - Clinical trials for Ventilator-Induced Lung Injury

Lung Protection Strategy in Open Heart Surgery: Which Tidal Volume is Better 8ml/kg or 6ml/kg

Start date: October 15, 2018
Phase: N/A
Study type: Interventional

Respiratory complications range from 8% to 79% of the frequency after open heart surgery where the patient is on-pump operated by cardiopulmonary machine. There were many changes in physiology due to anesthesia and cardiac surgery which cause volume and barotrauma complications with mechanical ventilation. These complications increase cost by prolonging morbidity and morbidity as well as hospital stay. Intraoperative and postoperative mechanical ventilation strategies can prevent these complications. CPB stimulates the systemic inflammatory response to the secretion of neutrophil, endotoxin and proinflammatory cytokines in the complex, increasing the permeability of the capillaries. Although coronary artery bypass graft surgery (CABG) is associated with a 0.4% to 2.0% acute respiratory distress syndrome (ARDS), mortality is quite high. Lung-protective ventilation strategies commonly used for prevention of ARDS. Ferrando et al. have proposed pulmonary ventilation with a tidal volume (TV) of less than 10 mL / kg as a pulmonary intraoperative protective ventilation strategy. Investigators aimed to compare oxygenation and ventilation parameters with respiratory mechanics in patients who underwent open heart surgery and were ventilated with 6 ml / kg tidal volume and 8 ml / kg TV, which were recommended as lung protective ventilation strategies during anesthesia.

NCT ID: NCT03637530 Active, not recruiting - Lung Injury, Acute Clinical Trials

a Study Conducted About a New Mode of Ventilation in Laparoscopic Surgeries

Start date: December 2016
Phase: N/A
Study type: Interventional

Carbon dioxide insufflations of abdomen are integral part of laparoscopic operations in minimally invasive surgery era. It does cause splinting effect on diaphragm movement and set it high inside thoracic cavity too. In turn it will be associated with increase in peak and plateau airway pressure during positive pressure ventilation. Inverse ratio ventilation has been shown to improve lung compliance and restrict the peak and plateau airway pressure and should be useful as one of the lung protective ventilation method to improve respiratory outcome in laparoscopy surgery.

NCT ID: NCT03632369 Withdrawn - Clinical trials for Non Small Cell Lung Cancer

Hyperpolarized Noble Gas MRI Detection of Radiation-Induced Lung Injury

Start date: December 2016
Phase:
Study type: Observational

Lung cancer is the leading cause of cancer death in the world; each year lung cancer claims over 20 000 lives in Canada and more than one million lives globally (1). Significant improvements have been made in treating many other types of cancer, but lung cancer care has not realized similar successes. Seventy percent of cancers are at an advanced stage at diagnosis, and radiation plays a standard role as a part of both radical and palliative therapy in these cases. Normal lung tissue is highly sensitive to radiation. This sensitivity poses a serious problem; it can cause radiation pneumonitis or fibrosis (RILI), which may result in serious disability and sometimes death. Thirty-seven percent of thoracic cancer patients treated with radiation develop RILI; in 20% of radiation therapy cases, injury to the lungs is moderate to severe (2). In addition, radiation-induced pneumonitis that produces symptoms occurs in 5-50% of individuals given radiotherapy for lung cancer (3, 4). The chances of clinical radiation pneumonitis are directly related to the irradiated volume of lung (5). However, radiation planning currently assumes that all parts of the lung are equally functional. Identification of the areas of the lung that are more functional would be beneficial in order to prioritize those areas for sparing during radiation planning. In order to limit the amount of RILI to preserve lung function in patients, clinicians plan radiation treatment using conformal or intensity-modulated radiotherapy (IMRT). This makes use of computed tomography (CT) scans, which take into account anatomic locations of both disease and lung but cannot assess the functionality of the lung itself. An important component of the rationale of IMRT is that if doses of radiation entering functional tissue are constrained, radiation dose can be focused on tumours to spare functional tissues from injury to preserve existing lung function (6). Therefore, to optimally reduce toxicity, IMRT would depend on data of not only tumour location, but also regional lung function. Pulmonary function tests (PFTs) can detect a decrease in pulmonary function due to the presence of tumours or RILI, but because the measurements are performed at the mouth, PFTs do not provide regional information on lung function. Positron emission tomography (PET) imaging may be used for radiation planning, but PET is limited in its ability to delineate functional tissue, it requires administration of a radiopharmaceutical agent, it is a slow modality, and, because it requires use of a cyclotron, it is expensive. Single-photon emission computed tomography (SPECT) imaging to measure pulmonary perfusion as a means for delineating functional tissue has been explored (7-11). Whereas SPECT can detect non-functional tissue, it offers spatial resolution that is only half that of CT or PET, and it does not possess the anatomical resolution necessary for optimal use with IMRT. Furthermore, like PET, SPECT is a slow modality. Given the limitations of existing imaging modalities, there is an urgent unmet medical need for an imaging modality that can provide complimentary data on regional lung function quickly and non-invasively, and that will limit tissue toxicity in radiotherapy for non-small cell lung cancer (NSCLC). Hyperpolarized (HP) gas magnetic resonance imaging (MRI) has the potential to fill this unmet need. HP gas MRI, uses HP xenon-129 (129Xe) to provide non-invasive, high resolution imaging without the need for ionizing radiation, paramagnetic, or iodinated chemical contrast agents. HP gas MRI offers the tremendous advantages of quickly providing high-resolution information on the lungs that is noninvasive, direct, functional, and regional. Conventional MRI typically detects the hydrogen (1H) nucleus, which presents limitations for lung imaging due to lack of water molecules in the lungs. HP gas MRI detects 129Xe nuclei, which are polarized using spin-exchange optical pumping (SEOP) technique to increase their effective MR signal intensity by approximately 100,000 times. HP gas MRI has already been widely successful for pulmonary imaging, providing high-resolution imaging information on lung structure, ventilation function, and air-exchange function. The technology has proven useful for imaging asthma, chronic obstructive pulmonary disease (COPD), and cystic fibrosis, and for assessing the efficacy of therapeutics for these diseases (12 -21). In this project, the investigators propose to develop an imaging technology for delineating regions of the lung in humans that are non-functional versus those that are viable; using hyperpolarized (HP) xenon-129 (129Xe) magnetic resonance imaging (MRI), will better inform beam-planning strategies, in an attempt to reduce RILI in lung cancer patients.

NCT ID: NCT03612583 Completed - Clinical trials for Respiratory Insufficiency

Lung and Diaphragm-Protective Ventilation by Means of Assessing Respiratory Work

LANDMARK
Start date: February 1, 2019
Phase: N/A
Study type: Interventional

This study is designed to test a proposed strategy for lung- and diaphragm-protective ventilation (LDPV) in patients with acute hypoxemic respiratory failure. Ventilation and sedation will be titrated to evaluate whether it is feasible and safe within this patient population.

NCT ID: NCT03581006 Completed - Lung Injury Clinical Trials

Food Intake REstriction for Health OUtcome Support and Education (FIREHOUSE) Trial

Start date: November 12, 2018
Phase:
Study type: Observational [Patient Registry]

This is a randomized-controlled unblinded clinical trial to investigate dietary intervention on metabolic biomarker assessment in World Trade Center (WTC) Lung Injury (LI) in firefighters. The purpose of this study is to evaluate biomarkers of metabolic dysregulation that have previously been found to predict WTC-LI in a case cohort study selected from the entire exposed firefighter cohort, and attempt to alter these metabolites using dietary intervention and a technology-supported behavioral modification program. Investigators will measure Pre/Post global metabolic expression in WTC-exposed, symptomatic firefighter serum sampled after 6-month intervention, as well as clinical outcomes of WTC-LI in the study group vs controls.

NCT ID: NCT03525691 Terminated - ARDS, Human Clinical Trials

Enhanced Lung Protective Ventilation With ECCO2R During ARDS

PROVE
Start date: May 23, 2018
Phase: N/A
Study type: Interventional

Acute Respiratory Distress Syndrome (ARDS) is associated with a mortality rate of 30 - 45 % and required invasive mechanical ventilation (MV) in almost 85 % of patients[1]. During controlled MV, driving pressure (i.e., the difference between end-inspiratory and end-expiratory airway pressure) depends of both tidal volume and respiratory system compliance. Either excessive tidal volume or reduced lung aeration may increase the driving pressure. ARDS patients receiving tidal volume of 6 ml/kg predicted body weight (PBW) and having a day-1 driving pressure ≥ 14 cmH2O have an increased risk of death in the hospital[2]. Seemly, in the LUNG SAFE observational cohort, ARDS patients having a day-1 driving pressure < 11 cmH2O had the lowest risk of death in the hospital[1]. Hence, driving pressure acts as a major contributor of mortality in ARDS, and probably reflects excessive regional lung distension resulting in pro-inflammatory and fibrotic biological processes. Whether decreasing the driving pressure by an intervention change mortality remains an hypothesis; but one of means is to decrease the tidal volume from 6 to 4 ml/ kg predicted body weight (PBW). However, this strategy promotes hypercarbia, at constant respiratory rate, by decreasing the alveolar ventilation. In this setting, implementing an extracorporeal CO2 removal (ECCO2R) therapy prevents from hypercarbia. A number of low-flow ECCO2R devices are now available and some of those use renal replacement therapy (RRT) platform. The investigators previously reported that combining a membrane oxygenator (0.65 m²) within a hemofiltration circuit provides efficacious low flow ECCO2R and blood purification in patients presenting with both ARDS and Acute Kidney injury[3]. This study aims to investigate the efficacy of an original ECCO2R system combining a 0.67 m² membrane oxygenator (Lilliput 2, SORIN) inserted within a specific circuit (HP-X, BAXTER) and mounted on a RRT monitor (PrismafleX, BAXTER). Such a therapy only aims to provide decarboxylation but not blood purification and has the huge advantage to be potentially implemented in most ICUs without requiring a specific ECCO2R device. The study will consist in three periods: - The first period will address the efficacy of this original ECCO2R system at tidal volume of 6 and 4 ml/kg PBW using an off-on-off design. - The second part will investigate the effect of varying the sweep gas flow (0-2-4-6-8-10 l/min) and the mixture of the sweep gas (Air/O2) on the CO2 removal rate. - The third part will compare three ventilatory strategies applied in a crossover design: 1. Minimal distension: Tidal volume 4 ml/kg PBW and positive end-expiratory pressure (PEEP) based on the ARDSNet PEEP/FiO2 table (ARMA). 2. Maximal recruitment: 4 ml/kg PBW and PEEP adjusted to maintain a plateau pressure between 23 - 25 cmH2O. 3. Standard: Tidal volume 6 ml/kg and PEEP based on the ARDSNet PEEP/FiO2 table (ARMA).

NCT ID: NCT03513809 Recruiting - Clinical trials for Acute Respiratory Distress Syndrome

Inflammation and Distribution of Pulmonary Ventilation Before and After Tracheal Intubation in ARDS Patients

Start date: June 8, 2017
Phase:
Study type: Observational [Patient Registry]

Spontaneous breathing efforts in patients with respiratory failure connected to mechanical ventilation, has been associated with strong respiratory muscles activity. However, these mechanisms may will be present in patients with acute lung deseases who are breathing with no ventilatory support. We hypothesize that spontaneous breathing during acute respiratory failure could induced lung inflammation and worsen lung damage. Hereby, the connection to a ventilatory support tool, may protect the lungs from spontaneous ventilation-induced lung injury. To test our hypothesis, our aim is to determine the effects of spontaneous breathing in acute respiratory failure patients, on lung injury distribution; and to determine whether early controlled mechanical ventilation can avoid these deleterious effects by improving air distribution.

NCT ID: NCT03464071 Recruiting - Sepsis Clinical Trials

Biomarkers of Lung Injury in Hyperinflation in the Mechanical Ventilator Versus Manual Hyperinflation

Start date: March 23, 2018
Phase: N/A
Study type: Interventional

Due to the failure of the respiratory system, many patients admitted to the Intensive Care Units (ICUs) require the institution of invasive mechanical ventilation (MV), aiming at maintaining gas exchange, reversing respiratory muscle fatigue, among other benefits. However, an artificial airway installation may be harmful because of its deleterious capacity to the mucociliary clearance mechanism, predisposing to the accumulation of secretions and consequent respiratory infections. Physiotherapy in patients critical for the purpose of preventing and treating these respiratory complications. In this way, they are techniques that aim at a reexpansion and removal of airborne secretions. An application of manual hyperinflation with the Ambú (HM), applied through compression of the resuscitator (Ambu), an application of hypertension for the use of energy, pulmonary volume. Similar to the goal of manual hyperinflation, a hyperinflation maneuver without mechanical ventilator (HVM) is also widely used and has been shown to be effective. A maneuvering visa re-expansion of collapsed lung areas and increased peak expiratory flow, resulting in the mobilization of secretions. It is known that these techniques can cause deleterious effects to the lungs due to the high volumes administered and the variation in airway depression, predisposing to barotrauma and volutrauma, increasing the lung permeability and consequent pulmonary edema. There may also be a more subtle form of injury, such as a release of lung mediators, initiating a process of local inflammation. This biological response is called biotrauma, and if these mediators translocate into the systemic circulation, it can lead to dysfunction and death. The aim of the present study was to evaluate the biomarkers of pulmonary lesion in the hyperinflation maneuver with mechanical ventilator versus manual hyperinflation with environments in sudden patients under mechanical ventilation.

NCT ID: NCT03437499 Completed - Lung Injury Clinical Trials

Adrenomedullin Changes After Sustained Inflation or Positive Pressure Ventilation at Birth

Start date: March 1, 2013
Phase: N/A
Study type: Interventional

In this clinical trial the Investigators aimed to assess the Adrenomedullin (AM) release in urine and plasma in preterm infants undergoing Sustained Inflation or Positive Pressure Ventilation at birth to manage respiratory failure.